EP1574688A1 - Mechanical drive system for an accessory gearbox - Google Patents
Mechanical drive system for an accessory gearbox Download PDFInfo
- Publication number
- EP1574688A1 EP1574688A1 EP05251096A EP05251096A EP1574688A1 EP 1574688 A1 EP1574688 A1 EP 1574688A1 EP 05251096 A EP05251096 A EP 05251096A EP 05251096 A EP05251096 A EP 05251096A EP 1574688 A1 EP1574688 A1 EP 1574688A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- shaft
- bevel gear
- gear
- tower
- lay
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
- 230000001154 acute effect Effects 0.000 description 1
- 230000008878 coupling Effects 0.000 description 1
- 238000010168 coupling process Methods 0.000 description 1
- 238000005859 coupling reaction Methods 0.000 description 1
- 239000000446 fuel Substances 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02C—GAS-TURBINE PLANTS; AIR INTAKES FOR JET-PROPULSION PLANTS; CONTROLLING FUEL SUPPLY IN AIR-BREATHING JET-PROPULSION PLANTS
- F02C7/00—Features, components parts, details or accessories, not provided for in, or of interest apart form groups F02C1/00 - F02C6/00; Air intakes for jet-propulsion plants
- F02C7/32—Arrangement, mounting, or driving, of auxiliaries
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02C—GAS-TURBINE PLANTS; AIR INTAKES FOR JET-PROPULSION PLANTS; CONTROLLING FUEL SUPPLY IN AIR-BREATHING JET-PROPULSION PLANTS
- F02C7/00—Features, components parts, details or accessories, not provided for in, or of interest apart form groups F02C1/00 - F02C6/00; Air intakes for jet-propulsion plants
- F02C7/36—Power transmission arrangements between the different shafts of the gas turbine plant, or between the gas-turbine plant and the power user
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F05—INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
- F05D—INDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
- F05D2260/00—Function
- F05D2260/40—Transmission of power
- F05D2260/403—Transmission of power through the shape of the drive components
- F05D2260/4031—Transmission of power through the shape of the drive components as in toothed gearing
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F05—INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
- F05D—INDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
- F05D2260/00—Function
- F05D2260/50—Kinematic linkage, i.e. transmission of position
- F05D2260/53—Kinematic linkage, i.e. transmission of position using gears
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T74/00—Machine element or mechanism
- Y10T74/19—Gearing
- Y10T74/19642—Directly cooperating gears
- Y10T74/19674—Spur and bevel
Definitions
- the present invention relates to gas turbine engines in general, and to apparatus for driving an accessory gearbox in particular.
- Aircraft powered by gas turbine engines very often include a mechanically driven accessory gearbox for driving accessory systems such as fuel pumps, scavenge pumps, electrical generators, hydraulic pumps, etc.
- the power requirements of the accessory gearbox continue to increase as the number of electrical systems within the aircraft increase.
- the accessory gearbox has been driven by a mechanical system connected to the drive shaft (i.e., the "high pressure drive shaft") extending between the high-pressure turbine and the high-pressure compressor of the gas turbine engine.
- the ability to tap power off of the high-pressure drive shaft is limited, however. What is needed is an apparatus for mechanically driving an accessory gearbox that can accommodate the higher power requirements of modern aircraft.
- a mechanical drive system for an accessory gearbox of a gas turbine engine has a high-pressure drive shaft and a low-pressure drive shaft.
- a first tower shaft is driven by the high-pressure drive shaft.
- a second tower shaft is driven by the low-pressure drive shaft.
- a first lay shaft is driven by the first tower shaft, and is connected to the accessory gearbox.
- a second lay shaft is driven by the second tower shaft, and is connected to the accessory gearbox.
- One of the advantages of the present invention mechanical drive system for an accessory gearbox is that it provides increased versatility and capability over prior art mechanical drive systems that utilize a single tower shaft engaged with the high-pressure drive shaft.
- the present invention has the capacity to draw power off of the low-pressure drive shaft and the high-pressure shaft alternatively, or at the same time.
- a gas turbine engine 10 is diagrammatically shown.
- the engine includes a high-pressure drive shaft 12, a low-pressure drive shaft 14, a low-pressure compressor 16, a high-pressure compressor 18, a high-pressure turbine 20, a low-pressure turbine 22, an accessory gearbox 24, and a mechanical drive system 26 for the accessory gearbox 24.
- the drive shafts 12,14, compressor sections 16,18, and turbine sections 20,22 are centered about an axially extending engine centerline 28.
- the low-pressure compressor 16 is disposed axially forward of the high-pressure compressor 18, and the high pressure turbine 20 is positioned forward of the low-pressure turbine 22.
- the term forward is used to indicate position along the axially extending engine centerline.
- a first component "forward" of a second component is positioned closer to the inlet 30 of the engine 10.
- the second component is positioned "aft" of the first component. In most instances, gas flow traveling through the core of the engine 10 encounters the forward component before it encounters the aft component.
- the low-pressure and high-pressure compressor sections 16,18 and the high and low-pressure turbine sections 20,22 each includes a plurality of stator and rotor stages.
- the high-pressure drive shaft 12 is connected to and extends between the high-pressure compressor 18 and the high-pressure turbine 20.
- the low-pressure drive shaft 14 is connected to and extends between the low-pressure compressor 16 and the low-pressure turbine 22.
- the high-pressure drive shaft 12 and the low-pressure drive shaft 14 rotate about the axially extending engine centerline 28.
- the drive shafts 12,14 are diagrammatically shown in FIG.1 as concentric cylinders to simply illustrate the relationship between the components. Most low-pressure and high-pressure drive shafts are concentric, but have relatively complex geometries to accommodate all of the various components attached thereto and disposed adjacent thereto.
- the portions of the drive shafts 12,14 shown in FIG.2 is illustrated with geometries more typical of those actually used within gas turbine engines.
- the mechanical drive system 26 for the accessory gearbox 24 includes a low-pressure drive shaft gear arrangement 32 ("LPDS gear arrangement”), a high-pressure drive shaft gear arrangement 34 ("HPDS gear arrangement”), a first tower shaft 36, a second tower shaft 38, a first angle gear arrangement 40, a second angle gear arrangement 42, a first lay shaft 44, and a second lay shaft 46.
- the LPDS gear arrangement 32 includes a first spur gear 43, a second spur gear 45, an intermediate shaft 47, a first bevel gear 48, and a second bevel gear 50.
- the first spur gear is fixed (e.g., by one or more splines) to the low-pressure drive shaft 14.
- the second spur gear 45 and the first bevel gear 48 are attached to the intermediate shaft 47.
- the second spur gear 45 is engaged with the first spur gear 43.
- the first bevel gear 48 is engaged with the second bevel gear 50, which is fixed to the second tower shaft 38.
- the HPDS gear arrangement 34 includes a third bevel gear 52 and a fourth bevel gear 54.
- the third bevel gear 52 is fixed (e.g., by one or more splines) to the high-pressure drive shaft 12.
- the third bevel gear 52 is engaged with the fourth bevel gear 54, which is fixed to the first tower shaft 36.
- the first and second tower shafts 36,38 are concentrically arranged and rotatable about a lengthwise extending axis 56.
- the axis 56 is typically oriented perpendicular to (or at an acute angle therefrom) the engine centerline 28.
- the second tower shaft 38 is disposed radially outside of the first tower shaft 36 for substantially all of the portions in which the two tower shafts 36,38 are concentric.
- the first and second tower shafts 36,38 typically each include one or more bearing mounts 58 to positionally locate and to facilitate rotation of the respective tower shaft.
- Each tower shaft 36,38 may be a unitary shaft or it may include multiple sections connected together (e.g., by splines, etc.).
- the first and second angle gear arrangements 40,42 are configured for use with concentric tower shafts 36,38 and concentric lay shafts 44,46.
- the first angle gear arrangement 40 includes a fifth bevel gear 60 and a sixth bevel gear 62
- the second angle gear arrangement 42 includes a seventh bevel gear 64 and an eighth bevel gear 66.
- the fifth bevel gear 60 is attached to the first tower shaft 36, and is engaged with the sixth bevel gear 62, which is attached to the first lay shaft 44.
- the seventh bevel gear 64 is attached to the second tower shaft 38, and is engaged with the eighth bevel gear 66, which is attached to the second lay shaft 46.
- first and second lay shafts 44,46 are concentrically arranged and rotatable about a lengthwise extending axis 68.
- the first lay shaft 44 is disposed radially inside of the second lay shaft 46 for substantially all of the portions in which the two lay shafts 44,46 are concentric.
- the first and second lay shafts 44,46 each typically include one or more bearing mounts 70 to positionally locate and to facilitate rotation of the respective lay shaft 44,46.
- Each lay shaft 44,46 may be a unitary shaft or it may include multiple sections connected together (e.g., by splines, etc.).
- the first and second angle gear arrangements 40,42 are configured for use with concentric tower shafts 36,38 and side-by-side lay shafts 44,46.
- the first angle gear arrangement 40 includes a ninth bevel gear 72 and a tenth bevel gear 74.
- the ninth bevel gear 72 is attached to the first tower shaft 36.
- the ninth bevel gear 72 is engaged with the tenth bevel gear 74, which is fixed to the first lay shaft 44.
- the second gear arrangement 42 includes a first spur gear 76, a second spur gear 78, an intermediate shaft 80, an eleventh bevel gear 82, and a twelfth bevel gear 84.
- the first spur gear 76 is fixed (e.g., by one or more splines) to the second tower shaft 38.
- the second spur gear 78 and the eleventh bevel gear 82 are attached to the intermediate shaft 80.
- the second spur gear 78 is aligned and engaged with the first spur gear 76.
- the eleventh bevel gear 82 is engaged with the twelfth bevel gear 84, which is fixed to the second lay shaft 46.
- first and second lay shafts 44,46 are disposed side-by-side, rotatable about lengthwise extending parallel axes 86,88.
- the first and second lay shafts 44,46 are shown in phantom in FIG.4, extending out of the page.
- the lay shafts 44,46 are shown extending lengthwise within the page, in the sectional top view of FIG.5.
- the lay shafts 44,46 each include one or more bearing mounts 90 to positionally locate and to facilitate rotation of the respective lay shaft 44,46.
- a coupling (not shown) is attached to, or formed with, the other end of each lay shaft 44,46, for connecting the respective lay shaft to the accessory gearbox 24.
- rotation of the low-pressure drive shaft 14 rotationally drives the LPDS gear arrangement 32.
- the LPDS gear arrangement 32 drives the second tower shaft 38 about its axis 56.
- Rotation of the high-pressure drive shaft 12 rotationally drives the HPDS gear arrangement 34.
- the HPDS gear arrangement 34 drives the first tower shaft 36 about its axis 56.
- rotation of the first tower shaft 36 causes the first angle gear arrangement 40 to rotate and drive the first lay shaft 44 (disposed radially inside of the second lay shaft 46).
- Rotation of the second tower shaft 38 causes the second angle gear arrangement 42 to rotate and drive the second lay shaft 46 (disposed radially outside of the first lay shaft 44).
- the concentric lay shafts 44,46 in turn, drive the accessory gearbox 24.
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- Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Gear Transmission (AREA)
Abstract
Description
- The present invention relates to gas turbine engines in general, and to apparatus for driving an accessory gearbox in particular.
- Aircraft powered by gas turbine engines very often include a mechanically driven accessory gearbox for driving accessory systems such as fuel pumps, scavenge pumps, electrical generators, hydraulic pumps, etc. The power requirements of the accessory gearbox continue to increase as the number of electrical systems within the aircraft increase. Historically, the accessory gearbox has been driven by a mechanical system connected to the drive shaft (i.e., the "high pressure drive shaft") extending between the high-pressure turbine and the high-pressure compressor of the gas turbine engine. The ability to tap power off of the high-pressure drive shaft is limited, however. What is needed is an apparatus for mechanically driving an accessory gearbox that can accommodate the higher power requirements of modern aircraft.
- According to the present invention, a mechanical drive system for an accessory gearbox of a gas turbine engine is provided. The engine has a high-pressure drive shaft and a low-pressure drive shaft. A first tower shaft is driven by the high-pressure drive shaft. A second tower shaft is driven by the low-pressure drive shaft. A first lay shaft is driven by the first tower shaft, and is connected to the accessory gearbox. A second lay shaft is driven by the second tower shaft, and is connected to the accessory gearbox.
- One of the advantages of the present invention mechanical drive system for an accessory gearbox is that it provides increased versatility and capability over prior art mechanical drive systems that utilize a single tower shaft engaged with the high-pressure drive shaft. For example, the present invention has the capacity to draw power off of the low-pressure drive shaft and the high-pressure shaft alternatively, or at the same time.
- These and other features and advantages of the present invention will become apparent in light of the detailed description of the present invention.
-
- FIG.1 is a diagrammatic view of a gas turbine engine.
- FIG.2 is a diagrammatic sectional view illustrating an embodiment of the first and second tower shafts and associated gear arrangements.
- FIG.3 is a diagrammatic sectional view illustrating an embodiment of the angle gear arrangement.
- FIG.4 is a diagrammatic sectional view illustrating an embodiment of the angle gear arrangement.
- FIG.5 is a diagrammatic sectional top view illustrating an embodiment of the angle gear arrangement shown in FIG.4.
-
- Referring to FIG.1, a
gas turbine engine 10 is diagrammatically shown. The engine includes a high-pressure drive shaft 12, a low-pressure drive shaft 14, a low-pressure compressor 16, a high-pressure compressor 18, a high-pressure turbine 20, a low-pressure turbine 22, anaccessory gearbox 24, and amechanical drive system 26 for theaccessory gearbox 24. The 12,14,drive shafts 16,18, andcompressor sections 20,22 are centered about an axially extendingturbine sections engine centerline 28. - The low-
pressure compressor 16 is disposed axially forward of the high-pressure compressor 18, and thehigh pressure turbine 20 is positioned forward of the low-pressure turbine 22. The term forward is used to indicate position along the axially extending engine centerline. A first component "forward" of a second component is positioned closer to theinlet 30 of theengine 10. The second component is positioned "aft" of the first component. In most instances, gas flow traveling through the core of theengine 10 encounters the forward component before it encounters the aft component. The low-pressure and high- 16,18 and the high and low-pressure compressor sections 20,22 each includes a plurality of stator and rotor stages.pressure turbine sections - The high-
pressure drive shaft 12 is connected to and extends between the high-pressure compressor 18 and the high-pressure turbine 20. The low-pressure drive shaft 14 is connected to and extends between the low-pressure compressor 16 and the low-pressure turbine 22. The high-pressure drive shaft 12 and the low-pressure drive shaft 14 rotate about the axially extendingengine centerline 28. The 12,14 are diagrammatically shown in FIG.1 as concentric cylinders to simply illustrate the relationship between the components. Most low-pressure and high-pressure drive shafts are concentric, but have relatively complex geometries to accommodate all of the various components attached thereto and disposed adjacent thereto. The portions of thedrive shafts 12,14 shown in FIG.2 is illustrated with geometries more typical of those actually used within gas turbine engines.drive shafts - Referring to FIGS. 1 and 2, the
mechanical drive system 26 for theaccessory gearbox 24 includes a low-pressure drive shaft gear arrangement 32 ("LPDS gear arrangement"), a high-pressure drive shaft gear arrangement 34 ("HPDS gear arrangement"), afirst tower shaft 36, asecond tower shaft 38, a firstangle gear arrangement 40, a secondangle gear arrangement 42, afirst lay shaft 44, and asecond lay shaft 46. The LPDSgear arrangement 32 includes afirst spur gear 43, asecond spur gear 45, anintermediate shaft 47, afirst bevel gear 48, and asecond bevel gear 50. The first spur gear is fixed (e.g., by one or more splines) to the low-pressure drive shaft 14. Thesecond spur gear 45 and thefirst bevel gear 48 are attached to theintermediate shaft 47. Thesecond spur gear 45 is engaged with thefirst spur gear 43. Thefirst bevel gear 48 is engaged with thesecond bevel gear 50, which is fixed to thesecond tower shaft 38. - The HPDS
gear arrangement 34 includes athird bevel gear 52 and afourth bevel gear 54. Thethird bevel gear 52 is fixed (e.g., by one or more splines) to the high-pressure drive shaft 12. Thethird bevel gear 52 is engaged with thefourth bevel gear 54, which is fixed to thefirst tower shaft 36. - The first and
36,38 are concentrically arranged and rotatable about a lengthwise extendingsecond tower shafts axis 56. Theaxis 56 is typically oriented perpendicular to (or at an acute angle therefrom) theengine centerline 28. Thesecond tower shaft 38 is disposed radially outside of thefirst tower shaft 36 for substantially all of the portions in which the two 36,38 are concentric. The first andtower shafts 36,38 typically each include one or more bearingsecond tower shafts mounts 58 to positionally locate and to facilitate rotation of the respective tower shaft. Each 36,38 may be a unitary shaft or it may include multiple sections connected together (e.g., by splines, etc.).tower shaft - Now referring to FIG. 3, in a first embodiment the first and second
40,42 are configured for use withangle gear arrangements 36,38 andconcentric tower shafts 44,46. In this embodiment, the firstconcentric lay shafts angle gear arrangement 40 includes afifth bevel gear 60 and asixth bevel gear 62, and the secondangle gear arrangement 42 includes aseventh bevel gear 64 and aneighth bevel gear 66. Thefifth bevel gear 60 is attached to thefirst tower shaft 36, and is engaged with thesixth bevel gear 62, which is attached to thefirst lay shaft 44. Theseventh bevel gear 64 is attached to thesecond tower shaft 38, and is engaged with theeighth bevel gear 66, which is attached to thesecond lay shaft 46. - In the first embodiment, the first and
44,46 are concentrically arranged and rotatable about a lengthwise extendingsecond lay shafts axis 68. Thefirst lay shaft 44 is disposed radially inside of thesecond lay shaft 46 for substantially all of the portions in which the two lay 44,46 are concentric. The first andshafts 44,46 each typically include one or more bearingsecond lay shafts mounts 70 to positionally locate and to facilitate rotation of the 44,46. Eachrespective lay shaft 44,46 may be a unitary shaft or it may include multiple sections connected together (e.g., by splines, etc.).lay shaft - Now referring to FIGS. 4 and 5, in a second embodiment the first and second
40,42 are configured for use withangle gear arrangements 36,38 and side-by-concentric tower shafts 44,46. In this embodiment, the firstside lay shafts angle gear arrangement 40 includes aninth bevel gear 72 and atenth bevel gear 74. Theninth bevel gear 72 is attached to thefirst tower shaft 36. Theninth bevel gear 72 is engaged with thetenth bevel gear 74, which is fixed to thefirst lay shaft 44. Thesecond gear arrangement 42 includes afirst spur gear 76, asecond spur gear 78, anintermediate shaft 80, aneleventh bevel gear 82, and atwelfth bevel gear 84. Thefirst spur gear 76 is fixed (e.g., by one or more splines) to thesecond tower shaft 38. Thesecond spur gear 78 and theeleventh bevel gear 82 are attached to theintermediate shaft 80. Thesecond spur gear 78 is aligned and engaged with thefirst spur gear 76. Theeleventh bevel gear 82 is engaged with thetwelfth bevel gear 84, which is fixed to thesecond lay shaft 46. - In the second embodiment, the first and
44,46 are disposed side-by-side, rotatable about lengthwise extendingsecond lay shafts 86,88. The first andparallel axes 44,46 are shown in phantom in FIG.4, extending out of the page. The parallel axes 86,88 along which the side-by-second lay shafts 44,46 extend, therefore also extend out of the page. Theside lay shafts 44,46 are shown extending lengthwise within the page, in the sectional top view of FIG.5. Thelay shafts 44,46 each include one or more bearing mounts 90 to positionally locate and to facilitate rotation of thelay shafts 44,46. A coupling (not shown) is attached to, or formed with, the other end of each layrespective lay shaft 44,46, for connecting the respective lay shaft to theshaft accessory gearbox 24. - Referring to FIG.2, in the operation of the
engine 10 rotation of the low-pressure drive shaft 14 rotationally drives theLPDS gear arrangement 32. TheLPDS gear arrangement 32, in turn, drives thesecond tower shaft 38 about itsaxis 56. Rotation of the high-pressure drive shaft 12 rotationally drives theHPDS gear arrangement 34. TheHPDS gear arrangement 34, in turn, drives thefirst tower shaft 36 about itsaxis 56. - Referring to FIG.3, in the first embodiment wherein the
36,38 and thetower shafts 44,46 are concentric, rotation of thelay shafts first tower shaft 36 causes the firstangle gear arrangement 40 to rotate and drive the first lay shaft 44 (disposed radially inside of the second lay shaft 46). Rotation of thesecond tower shaft 38 causes the secondangle gear arrangement 42 to rotate and drive the second lay shaft 46 (disposed radially outside of the first lay shaft 44). The 44,46, in turn, drive theconcentric lay shafts accessory gearbox 24. - Referring to FIGS. 4 and 5, in the second embodiment wherein the
36,38 are concentric and thetower shafts 44,46 side-by-side, rotation of thelay shafts first tower shaft 36 causes the firstangle gear arrangement 40 to drive thefirst lay shaft 44. Rotation of thesecond tower shaft 38 causes thesecond gear arrangement 42 to drive thesecond lay shaft 46. Thesecond gear arrangement 42 connects the second lay shaft 46 (positioned side-by-side with, and therefor spaced apart from, the first lay shaft 44) to thesecond tower shaft 38 via theintermediate shaft 80. The side-by- 44,46, in turn, drive theside lay shafts accessory gearbox 24. - Although this invention has been shown and described with respect to the detailed embodiments thereof, it will be understood by those skilled in the art that various changes in form and detail thereof may be made without departing from the scope of the invention. For example, the invention is described above using bevel gears and spur gears in certain configurations. The concentric and side-by-side configurations could also be accomplished using alternative gear arrangements.
Claims (17)
- A mechanical drive system for an accessory gearbox (24) of a gas turbine engine, which engine has a high-pressure drive shaft (12) and a low-pressure drive shaft (14), the drive system comprising:a first tower shaft (36) connected by a first gear arrangement (34) to the high-pressure drive shaft (12);a second tower shaft (38) connected by a second gear arrangement (32) to the low-pressure drive shaft (14);a first lay shaft (44) connected by a third gear arrangement (40) to the first tower shaft (36), and connected to the accessory gearbox (24); anda second lay shaft (46) connected by a fourth gear arrangement (42) to the second tower shaft (38), and connected to the accessory gearbox (24).
- The mechanical drive system of claim 1, wherein the first tower shaft (36) is concentric with the second tower shaft (38).
- The mechanical drive system of claim 2, wherein the first lay shaft (44) is concentric with the second lay shaft (46).
- The mechanical drive system of claim 3, wherein the third gear arrangement (40) includes a first bevel gear (60) attached to the first tower shaft (36), and a second bevel gear (62) attached to the first lay shaft (44), wherein the first bevel gear (60) and the second bevel gear (62) are engaged with one another.
- The mechanical drive system of claim 4, wherein the fourth gear arrangement (42) includes a third bevel gear (64) attached to the second tower shaft (38), and a fourth bevel gear (66) attached to the second lay shaft (46), wherein the third bevel gear (64) and the fourth bevel gear (66) are engaged with one another.
- The mechanical drive system of claim 2, wherein the first lay shaft (44) is disposed spaced apart from and parallel to the second lay shaft (46).
- The mechanical drive system of claim 6, wherein the third gear arrangement (40) includes a first bevel gear (72) attached to the first tower shaft (36), and a second bevel gear (74) attached to the first lay shaft (44), wherein the first bevel gear (72) and the second bevel gear (74) are engaged with one another.
- The mechanical drive system of claim 7, wherein the fourth gear arrangement (42) includes a first spur gear (76), a second spur gear (78), an intermediate shaft (80), a first bevel gear (82), and a second bevel gear (84), wherein the first spur gear (76) is attached to the second tower shaft (38), and the second spur gear (78) and the first bevel gear (82) are attached to the intermediate shaft (80), and the second bevel gear (78) is attached to the second lay shaft (46);
wherein the first spur gear (76) and the second spur gear (78) are engaged with one another; and
wherein the first bevel gear (82) and the second bevel gear (84) are engaged with one another. - A mechanical drive system for an accessory gearbox (24) of a gas turbine engine, which engine has a high-pressure drive shaft (12) and a low-pressure drive shaft (14), the drive system comprising:a first tower shaft (36) driven by the high-pressure drive shaft (12);a second tower shaft (38) driven by the low-pressure drive shaft (14);a first lay shaft (44) driven by the first tower shaft (36), and connected to the accessory gearbox (24); anda second lay shaft (46) driven by the second tower shaft (38), and connected to the accessory gearbox (24).
- The mechanical drive system of claim 9, wherein the first tower shaft (36) is concentric with the second tower shaft (38).
- The mechanical drive system of claim 10, wherein the first lay shaft (44) is concentric with the second lay shaft (46).
- The mechanical drive system of claim 11, wherein a first gear arrangement (40) connects the first tower shaft (36) to the first lay shaft (44), and the first gear arrangement includes a first bevel gear (60) attached to the first tower shaft (36), and a second bevel gear (62) attached to the first lay shaft, wherein the first bevel gear (60) and the second bevel gear (62) are engaged with one another.
- The mechanical drive system of claim 12, wherein a second gear arrangement (42) includes a third bevel gear (64) attached to the second tower shaft (38), and a fourth bevel gear (66) attached to the second lay shaft (46), wherein the third bevel gear (64) and the fourth bevel gear (66) are engaged with one another.
- The mechanical drive system of claim 9, wherein the first lay shaft (44) is disposed spaced apart from and parallel to the second lay shaft (46).
- The mechanical drive system of claim 6, wherein a first gear arrangement (40) connects the first tower shaft (36) to the first lay shaft (44), the first gear arrangement including a first bevel gear (72) attached to the first tower shaft, and a second bevel gear (74) attached to the first lay shaft, wherein the first bevel gear (72) and the second bevel gear (74) are engaged with one another.
- The mechanical drive system of claim 15, wherein a second gear arrangement (42) connects the second tower shaft (38) to the second lay shaft (46), the second gear arrangement including a first spur gear (76), a second spur gear (78), an intermediate shaft (80), a first bevel gear (82), and a second bevel gear (84), wherein the first spur gear (76) is attached to the second tower shaft (38), and the second spur gear (78) and the first bevel gear (82) are attached to the intermediate shaft (80), and the second bevel gear (84) is attached to the second lay shaft (46);
wherein the first spur gear (76) and the second spur gear (78) are engaged with one another; and
wherein the first bevel gear (82) and the second bevel gear (84) are engaged with one another. - A gas turbine engine, comprising:wherein the high-pressure drive shaft (12) and the low-pressure drive shaft (14) rotate about an axially extending engine centerline (28);a high-pressure drive shaft (12) connected to a high-pressure compressor (18) and a high-pressure turbine (20);a low-pressure drive shaft (14) connected to a low-pressure compressor (16) and a low-pressure turbine (22);
an accessory gear box (24); and
a mechanical drive system as claimed in any preceding claim.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US10/785,502 US7386983B2 (en) | 2004-02-25 | 2004-02-25 | Apparatus for driving an accessory gearbox in a gas turbine engine |
| US785502 | 2004-02-25 |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP1574688A1 true EP1574688A1 (en) | 2005-09-14 |
| EP1574688B1 EP1574688B1 (en) | 2008-09-24 |
Family
ID=34827566
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP05251096A Expired - Lifetime EP1574688B1 (en) | 2004-02-25 | 2005-02-24 | Mechanical drive system for an accessory gearbox |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US7386983B2 (en) |
| EP (1) | EP1574688B1 (en) |
| JP (1) | JP2005240800A (en) |
| DE (1) | DE602005009879D1 (en) |
Cited By (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
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| GB2610565A (en) | 2021-09-08 | 2023-03-15 | Rolls Royce Plc | An improved gas turbine engine |
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-
2005
- 2005-02-01 JP JP2005024659A patent/JP2005240800A/en active Pending
- 2005-02-24 DE DE602005009879T patent/DE602005009879D1/en not_active Expired - Lifetime
- 2005-02-24 EP EP05251096A patent/EP1574688B1/en not_active Expired - Lifetime
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| GB839961A (en) * | 1956-11-01 | 1960-06-29 | Bristol Siddeley Engines Ltd | Improvements in or relating to engine accessory mounting arrangements |
| GB1055118A (en) * | 1965-08-19 | 1967-01-18 | Rolls Royce | Gas turbine engine accessory drive mechanism |
| US3543588A (en) * | 1968-11-12 | 1970-12-01 | Gen Motors Corp | Accessory installation |
| US4776163A (en) * | 1986-07-01 | 1988-10-11 | Kloeckner-Humboldt-Deutz Ag | Gas turbine power unit |
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Cited By (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FR2882096A1 (en) * | 2005-02-11 | 2006-08-18 | Snecma Moteurs Sa | Twin-shaft turbine engine for aircraft, has main drive pinion module driving movement transmission shafts extending coaxially, and driving unit comprising high and low pressure drive pinions integrated to high and low pressure rotors |
| EP1701019A1 (en) * | 2005-02-11 | 2006-09-13 | Snecma | Two-spool turbomachine with driving module on low pressure and high pressure rotors, driving module for the turbomachine and turbomachine assembly method |
| US7552591B2 (en) | 2005-02-11 | 2009-06-30 | Snecma | Twin spool turbine engine with power take-off means on the low-pressure and high-pressure rotors, and power take-off module for the turbine engine |
| EP1908941A3 (en) * | 2006-09-27 | 2011-07-27 | General Electric Company | Gas turbine engine assembly and method of assembling same |
| FR2921423A1 (en) * | 2007-09-25 | 2009-03-27 | Snecma Sa | Double-body turbo machine e.g. jet engine, for airplane, has selective coupling units intercalated between shaft and two transmission shafts to connect shaft respectively to transmission shafts during starting and operating phases |
| WO2012175884A1 (en) * | 2011-06-24 | 2012-12-27 | Snecma | Accessory relay having an extended service life |
| FR2976976A1 (en) * | 2011-06-24 | 2012-12-28 | Snecma | RELAY ACCESSORIES WITH ENHANCED LIFETIME |
| US9352649B2 (en) | 2011-06-24 | 2016-05-31 | Snecma | Accessory relay having an extended service life |
| EP3696392A1 (en) * | 2019-02-13 | 2020-08-19 | United Technologies Corporation | Angle accessory gearbox for gas turbine engine |
| EP3696392B1 (en) | 2019-02-13 | 2022-04-20 | Raytheon Technologies Corporation | Angle accessory gearbox for gas turbine engine |
Also Published As
| Publication number | Publication date |
|---|---|
| US7386983B2 (en) | 2008-06-17 |
| US20050183529A1 (en) | 2005-08-25 |
| DE602005009879D1 (en) | 2008-11-06 |
| EP1574688B1 (en) | 2008-09-24 |
| JP2005240800A (en) | 2005-09-08 |
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